English

Quantum Data Centers in the Presence of Noise

Quantum Physics 2024-12-20 v2

Abstract

Quantum data centres (QDCs) could overcome the scalability challenges of modern quantum computers. Single-processor monolithic quantum computers are affected by increased cross talk and difficulty of implementing gates when the number of qubits is increased. In a QDC, multiple quantum processing units (QPUs) are linked together over short distances, allowing the total number of computational qubits to be increased without increasing the number of qubits on any one processor. In doing so, the error incurred by operations at each QPU can be kept small, however additional noise will be added to the system due to the latency cost and errors incurred during inter-QPU entanglement distribution. We investigate the relative impact of these different types of noise using a classically simulated QDC with two QPUs and compare the robustness to noise of the two main ways of implementing remote gates, cat-comm and TP-comm. We find that considering the quantity of gates or inter-QPU entangled links is often inadequate to predict the output fidelity from a quantum circuit and infer that an improved understanding of error propagation during distributed quantum circuits may represent a significant optimisation opportunity for compilation.

Cite

@article{arxiv.2407.10769,
  title  = {Quantum Data Centers in the Presence of Noise},
  author = {K. Campbell and A. Lawey and M. Razavi},
  journal= {arXiv preprint arXiv:2407.10769},
  year   = {2024}
}

Comments

29 pages, 18 figures. Accepted for publication in IOP Quantum Science and Technology. The following changes have been made for v2: legends were added to figures in addition to the annotations; some typos have been corrected; some minor additional information has been provided in places to clarify comments made; and the style has been changed from single-column to two-column